Systematic Virtual Screening of Heparan Sulfate Oligosaccharides and Mechanistic Insights into Heparanase Inhibition
Binjie Li, Siran Zhao, Zonglin Lan, Marco Maccarana, Xiao Zhang, Vito Ferro, Hui Cao, Tianji Zhang, Mingjia Yu, Jin-Ping LiAbstract
Heparanase (Hpse) is an endo-β-glucuronidase that specifically cleaves heparan sulfate (HS) and plays critical roles in the pathogenesis of multiple diseases, making it a well-validated therapeutic target. To identify novel Hpse inhibitors, we developed a rule-based computational pipeline to construct a rigorously curated database of HS oligosaccharides ranging from disaccharides to hexasaccharides. This database systematically encompasses all possible sulfation patterns and stereochemical configurations of the three monosaccharide species in HS. Using a multistage virtual screening strategy against Hpse, we prioritized high-affinity HS oligosaccharides for detailed analysis. Structural motif profiling of the top-ranking candidates revealed that even-numbered oligosaccharides preferentially retain the iduronic acid (IdoA)-N-acetyl-3-O-sulfated glucosamine (GlcNAc3S) motif, whereas odd-numbered species are enriched with IdoA2S and 3,6-O-sulfated glucosamine (GlcN3S6S) motifs. Systematic desulfation of the lead compound, HP-dp5R1, found that removal of 2-O- or 3-O-sulfate groups resulted in substantially larger penalties to binding-free energy compared with removal of 6-O- or N-sulfates, indicating a dominant role for 2-O/3-O sulfation in Hpse recognition. Molecular dynamics simulations and binding-free energy calculations further revealed that longer oligosaccharides form extensive interactions with the heparin-binding domains (HBD1 and HBD2) flanking the catalytic cleft, leading to reduced conformational fluctuation. Together with preliminary experimental results using selected octasaccharides that resemble the structural features of the top-hit oligosaccharides identified from virtual screening, we demonstrate that the integrated computational platform provides a robust foundation for the rational design of HS-based Hpse inhibitors. More broadly, the virtual HS oligosaccharide database described here is expected to serve as a powerful resource for screening other HS-binding proteins and for the discovery of novel agonists or antagonists.